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Structural changes of graphene layers are studied by optical microscopy, Raman spectroscopy and atomic force microscopy.
The structural changes of graphene induced by the controllable doping thus facilitate the tunable electrical property, which can be tuned over several orders of magnitude.
The structural changes of graphene caused by chemisorbed hydrogen are discussed and are compared with existing experimental data and other theoretical calculations.
However, after the deposition of the ITO nanoparticles on graphene, an increment in I D/I G of up to 1.254 and the reduction in I 2D/I G to 1.277 were revealed, indicating that disorder-induced structural changes of graphene occur as the result of the introduction of ITO nanoparticles over graphene.
The structural characterization indicated that graphene growth induces reversible, well defined faceting of iridium surface into alternating terraces and step bunches, while spectroscopy techniques revealed substantial changes of graphene's electronic structure.
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Additional results for the zeta potential, TEM, TGA, powder XRD, liquid nitrogen adsorption, MD (CharMM force field) simulations, schematic of the conformational changes of graphenes and Raman spectroscopy.
Graphene band gap changes with the change of graphene's width.
Several properties of carbon cryogels were highly dependent on small change of graphene loading.
To address this assumption, we investigated the chemical change of graphene from the presented carbon 1s (core cofe of graphite and C1s core of graphene in Fig. 4c, d.
This limitation is possibly caused by the exponential change of graphene size with exfoliation duration that is lower than 180 min [12].
The refractive index change of graphene layer leads to a shift in the Fano resonance frequency due to the input light intensity through the Kerr nonlinear effect.
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